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A least squares approach for the reconstruction of nerve fiber orientations from tiltable specimen experiments in 3D-PLI

机译:从3D-PLI中的可倾斜标本实验重建神经纤维方向的最小二乘法

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3D-Polarized Light Imaging has become a unique technique to study the fiber architecture of unstained brain sections at the meso- and microscale. It exploits the intrinsic birefringence of nerve fibers which is measured with a customized Polarimeter in which the brain section is placed on a tiltable specimen stage. So far, a computationally fast analytical method based on the discrete Fourier transformation to analyze the data acquired with the tiltable specimen stage has been used. In this study, we propose a new algorithm based on a fitting approach which provides an improved stability against measurement noise resulting in a more realistic orientation interpretation, in particular for low signals. For the first time, it is demonstrated how fiber courses at the boundary of white and grey matter can robustly be reconstructed with 3D-PLI. This significantly improves the reliability of mapping the cortex based on 3D-PLI data.
机译:3D极化光成像技术已成为一种独特的技术,可以在中尺度和微尺度上研究未染色的大脑切片的纤维结构。它利用神经纤维的固有双折射,这是通过定制的旋光仪测量的,其中脑部放置在可倾斜的样品台上。到目前为止,已经使用了基于离散傅里叶变换的计算快速分析方法来分析可倾斜样本台采集的数据。在这项研究中,我们提出了一种基于拟合方法的新算法,该算法提供了针对测量噪声的改进的稳定性,从而导致了更加逼真的方位解释,尤其是对于低信号。首次展示了如何使用3D-PLI稳健地重建白和灰质边界处的纤维走向。这显着提高了基于3D-PLI数据映射皮层的可靠性。

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